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I am following the example provided in the commons file upload site about streaming API. I am stuck trying to figure out how to get the file extension of the uploaded file, how to write the file to a directory and the worst part is where the person who wrote the example comments // Process the input stream... It leaves me wondering if it's something so trivial that I'm the only one who doesn't know how to.

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There is an enormous amount of information on how to do this here: link. –  Sticks Mar 15 '13 at 12:29
    
OMG this question has been viewed 1K+ times, I can't believe it it has made my day. Guys if this information helps you in any way remember to up vote it's how we say thanks here. cheers. –  qualebs Sep 18 '13 at 15:39

4 Answers 4

up vote 5 down vote accepted

Use this in your HTML file:

<form action="UploadController" enctype="multipart/form-data" method="post">  
  <input type="file">  
</form>

and in the UploadController servlet, inside the doPost method:

    boolean isMultipart = ServletFileUpload.isMultipartContent(request);

    if (isMultipart) {
        FileItemFactory factory = new DiskFileItemFactory();
        ServletFileUpload upload = new ServletFileUpload(factory);

    try {
        List items = upload.parseRequest(request);
        Iterator iterator = items.iterator();
        while (iterator.hasNext()) {
            FileItem item = (FileItem) iterator.next();

            if (!item.isFormField()) {
                String fileName = item.getName();

                String root = getServletContext().getRealPath("/");
                File path = new File(root + "/uploads");
                if (!path.exists()) {
                    boolean status = path.mkdirs();
                }

                File uploadedFile = new File(path + "/" + fileName);
                System.out.println(uploadedFile.getAbsolutePath());
                item.write(uploadedFile);
            }
        }
    } catch (FileUploadException e) {
        e.printStackTrace();
    } catch (Exception e) {
        e.printStackTrace();
    }
}
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boolean isMultipart = ServletFileUpload.isMultipartContent(request); ServletFileUpload upload = new ServletFileUpload(); FileItemIterator iter = upload.getItemIterator(request); while (iter.hasNext()) { FileItemStream item = iter.next(); String name = item.getFieldName(); InputStream stream = item.openStream(); if (item.isFormField()) { } else { // Process the input stream ... } } –  qualebs Mar 15 '13 at 14:03
    
so sorry for the poor code formatting. I am on mobile device. now how do you process the stream from the above snippet? –  qualebs Mar 15 '13 at 14:12
3  
Are you sure that you are using streaming API FileItem item = (FileItem) iterator.next(); ? I think it should be FileItemStream item = iterator.next(); so you can use streaming. –  Don Jan 16 at 10:20
    
You must add a name parameter to the <input> file, like <input type="file" name="file">, otherwise the file won't be uploaded. Or at least it didn't work for me on Chrome or Firefox. This, and the code sample does not use the Streaming API. –  gorex Feb 26 at 16:14

Here is a Servlet that does what you want it to do.

package rick;
import javax.servlet.*;
import javax.servlet.http.*;
import java.io.*;
import org.apache.commons.fileupload.*;
import org.apache.commons.fileupload.util.*;
import org.apache.commons.fileupload.servlet.ServletFileUpload;
import javax.servlet.annotation.WebServlet; 
@WebServlet("/upload4")
public class UploadServlet4 extends HttpServlet{
  protected void doPost(HttpServletRequest request, HttpServletResponse response) 
         throws ServletException, IOException {
       PrintWriter out = response.getWriter();
       out.print("Request content length is " + request.getContentLength() + "<br/>"); 
       out.print("Request content type is " + request.getHeader("Content-Type") + "<br/>");
       boolean isMultipart = ServletFileUpload.isMultipartContent(request);
       if(isMultipart){
                  ServletFileUpload upload = new ServletFileUpload();
           try{
               FileItemIterator iter = upload.getItemIterator(request);
               FileItemStream item = null;
               String name = "";
               InputStream stream = null;
               while (iter.hasNext()){
                                     item = iter.next();
                                     name = item.getFieldName();
                                     stream = item.openStream();
                  if(item.isFormField()){out.write("Form field " + name + ": " 
                                           + Streams.asString(stream) + "<br/>");}
                  else {
                      name = item.getName();
                      System.out.println("name==" + name);
                      if(name != null && !"".equals(name)){
                         String fileName = new File(item.getName()).getName();
                         out.write("Client file: " + item.getName() + " <br/>with file name "
                                                    + fileName + " was uploaded.<br/>");
                         File file = new File(getServletContext().getRealPath("/" + fileName));
                         FileOutputStream fos = new FileOutputStream(file);
                         long fileSize = Streams.copy(stream, fos, true);
                         out.write("Size was " + fileSize + " bytes <br/>");
                         out.write("File Path is " + file.getPath() + "<br/>");
                      }
                  }
               }
           } catch(FileUploadException fue) {out.write("fue!!!!!!!!!");}
       } 
  }
} 
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The problem with all of these answers is that IT DOESN'T ANSWER THE ORIGINAL QUESTION!!

As it says "process the input stream" it really confuses you what to do next. I was looking at this question all last night trying to find a hint from one of the answers, but nothing. I went and tried other sites, and nothing.

The thing is, what we are doing is out of File Upload's scope, and that is the problem.

We are now working with Java.IO InputStream

  InputStream stream = item.openStream();

now we work with that "stream."

https://www.google.com/webhp?sourceid=chrome-instant&ion=1&espv=2&ie=UTF-8#q=+writing+a+java+inputstream+to+a+file

Here you can find all sorts of answers to what you need. It's pretty silly that it's so vague, and makes it seem like you have to do something extra with Commons, but in reality it's not commons InputStream it's Java.io's!

In our case we take the stream we are given and upload to a new file by reading byte data

This site also has a bunch of options that might be useful http://www.jedi.be/blog/2009/04/10/java-servlets-and-large-large-file-uploads-enter-apache-fileupload/

I hope this helps others who are confused and new to FileUploading, because I just figured this out a few minutes before writing this answer.

Here is my code that saves a file to the root drive.

try { System.out.println("sdfk");

        boolean isMultipart = ServletFileUpload.isMultipartContent(request);

// Create a new file upload handler ServletFileUpload upload = new ServletFileUpload();

// Parse the request FileItemIterator iter = upload.getItemIterator(request);

        while (iter.hasNext())
        {
            FileItemStream item = iter.next();
            String name = item.getFieldName();
            InputStream stream = item.openStream();


                System.out.println("File field " + name + " with file name "
                        + item.getName() + " detected.");
                // Process the input stream
                File f = new File("/"+item.getName());

             System.out.println(f.getAbsolutePath());

            FileOutputStream fout= new FileOutputStream(f);
            BufferedOutputStream bout= new BufferedOutputStream (fout);
            BufferedInputStream bin= new BufferedInputStream(stream);


            int byte_;

            while ((byte_=bin.read()) != -1)
            {
                 bout.write(byte_);
            }

            bout.close();
            bin.close();


        }       

    } 
    catch (FileUploadException ex)
    {
        Logger.getLogger(UploadServlet.class.getName()).log(Level.SEVERE, null, ex);
    }
    response.sendRedirect("/plans.jsp");

Good luck!

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There's a fantastic 'library' to do this for you. It's actually just a code sample of a Filter that will intercept any form posts of type multipart and give you access to the file, file name etc... which you can handle in your normal servlet post method.

http://balusc.blogspot.com/2007/11/multipartfilter.html

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